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Published on: April 2, 2013
Avirulent phenotype promotes Bordetella pertussis adaptation to the intramacrophage environment
Mariam R Farman1, Denisa Petráčková2, Dilip Kumar2
1Institute for Theoretical Chemistry, University of Vienna, Vienna, Austria.
Abstract:
Bordetella pertussis, the causative agent of whooping cough, is an extracellular, strictly human pathogen. However, it has been shown that B. pertussis cells can escape phagocytic killing and survive in macrophages upon internalization. Our time-resolved RNA-seq data suggest that B. pertussis efficiently adapts to the intramacrophage environment and responds to host bactericidal activities. We show that this adaptive response is multifaceted and, surprisingly, related to the BvgAS two-component system, a master regulator of virulence. Our results show that the expression of this regulatory circuit is downregulated upon internalization. Moreover, we demonstrate that the switch to the avirulent Bvg- phase augments a very complex process based on the adjustment of central and energy metabolism, cell wall reinforcement, maintenance of appropriate redox and metal homeostasis, and repair of damaged macromolecules. Nevertheless, not all observed effects could be simply attributed to the transition to Bvg- phase, suggesting that additional regulators are involved in the adaptation to the intramacrophage environment. Interestingly, a large number of genes required for the metabolism of sulphur were strongly modulated within macrophages. In particular, the mutant lacking two genes encoding cysteine dioxygenases displayed strongly attenuated cytotoxicity toward THP-1 cells. Collectively, our results suggest that intracellular B. pertussis cells have adopted the Bvg- mode to acclimate to the intramacrophage environment and respond to antimicrobial activities elicited by THP-1 cells. Therefore, we hypothesize that the avirulent phase represents an authentic phenotype of internalized B. pertussis cells.
Insights
Bordetella pertussis, the whooping cough bacterium, survives inside immune cells by downregulating its virulence (BvgAS system). This adaptation involves metabolic shifts and cell wall changes, suggesting an avirulent phase is key for intracellular survival.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Host-Pathogen Interactions
Background:
- Bordetella pertussis causes whooping cough and can survive within macrophages.
- Understanding bacterial adaptation to host cells is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the adaptive mechanisms of B. pertussis within macrophages.
- To identify key regulatory systems involved in intracellular survival.
Main Methods:
- Time-resolved RNA sequencing (RNA-seq) to analyze gene expression changes.
- Analysis of BvgAS two-component system regulation.
- Assessment of mutant strains' cytotoxicity.
Main Results:
- B. pertussis downregulates the BvgAS virulence regulator upon internalization into macrophages.
- Intracellular adaptation involves metabolic adjustments, cell wall reinforcement, and homeostasis maintenance.
- Sulfur metabolism genes are significantly modulated, with cysteine dioxygenase mutants showing reduced cytotoxicity.
Conclusions:
- Intracellular B. pertussis utilizes the avirulent Bvg- phase for adaptation and survival within macrophages.
- This adaptive strategy involves complex metabolic and cellular changes.
- Additional regulators beyond BvgAS likely contribute to intramacrophage survival.
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